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An Automated Scientist to Design and Optimize Microbial Strains for the Industrial Production of Small Molecules

Amoolya H. Singh, View ORCID ProfileBenjamin B. Kaufmann-Malaga, Joshua A. Lerman, Daniel P. Dougherty, Yang Zhang, Alexander L. Kilbo, View ORCID ProfileErin H. Wilson, View ORCID ProfileChiam Yu Ng, View ORCID ProfileOnur Erbilgin, Kate A. Curran, Christopher D. Reeves, View ORCID ProfileJohn E. Hung, Simone Mantovani, View ORCID ProfileZachary A. King, Marites J. Ayson, Judith R. Denery, Chia-Wei Lu, Phillip Norton, Carol Tran, Darren M. Platt, Joel R. Cherry, Sunil S. Chandran, View ORCID ProfileAdam L. Meadows
doi: https://doi.org/10.1101/2023.01.03.521657
Amoolya H. Singh
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Benjamin B. Kaufmann-Malaga
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Benjamin B. Kaufmann-Malaga
Joshua A. Lerman
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Daniel P. Dougherty
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Yang Zhang
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Alexander L. Kilbo
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Erin H. Wilson
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Erin H. Wilson
Chiam Yu Ng
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Chiam Yu Ng
Onur Erbilgin
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Onur Erbilgin
Kate A. Curran
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Christopher D. Reeves
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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John E. Hung
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for John E. Hung
Simone Mantovani
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Zachary A. King
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Zachary A. King
Marites J. Ayson
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Judith R. Denery
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Chia-Wei Lu
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Phillip Norton
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Carol Tran
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Darren M. Platt
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Joel R. Cherry
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Sunil S. Chandran
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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Adam L. Meadows
1Amyris Inc., 5885 Hollis St. Ste 100, Emeryville CA 94608
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  • ORCID record for Adam L. Meadows
  • For correspondence: meadows@amyris.com
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Abstract

Engineering microbes to synthesize molecules of societal value has historically been a time consuming and artisanal process, with the synthesis of each new non-native molecule typically warranting its own separate publication. Because most microbial strain engineering efforts leverage a finite number of common metabolic engineering design tactics, we reasoned that automating these design steps would help create a pipeline that can quickly, cheaply, and reliably generate so-called microbial factories. In this work we describe the design and implementation of a computational system, an Automated Scientist we call Lila, which handles all metabolic engineering design and optimization through the design-build-test-learn (DBTL) paradigm. Lila generates metabolic routes, identifies relevant genetic elements for perturbation, and specifies the design and re-design of microbial strains in a matter of seconds to minutes. Strains specified by Lila are then built and subsequently phenotyped as part of a largely automated in-house pipeline. Humans remain in-the-loop to curate choices made by the system, helping for example to refine the metabolic model or suggest custom protein modifications. Lila attempted to build strains that could produce 454 biochemically diverse molecules with precursors located broadly throughout the metabolism of two microbial hosts, Saccharomyces cerevisiae and Escherichia coli. Notably, we observed the highest published titers for the molecule naringenin, the metabolic precursor to flavonoids. In total we created hundreds of thousands of microbial strains capable of overproducing 242 molecules, of which 180 are not native to S. cerevisiae or E. coli.

Competing Interest Statement

All authors are currently, or were previously, Amyris stockholders.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted January 03, 2023.
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An Automated Scientist to Design and Optimize Microbial Strains for the Industrial Production of Small Molecules
Amoolya H. Singh, Benjamin B. Kaufmann-Malaga, Joshua A. Lerman, Daniel P. Dougherty, Yang Zhang, Alexander L. Kilbo, Erin H. Wilson, Chiam Yu Ng, Onur Erbilgin, Kate A. Curran, Christopher D. Reeves, John E. Hung, Simone Mantovani, Zachary A. King, Marites J. Ayson, Judith R. Denery, Chia-Wei Lu, Phillip Norton, Carol Tran, Darren M. Platt, Joel R. Cherry, Sunil S. Chandran, Adam L. Meadows
bioRxiv 2023.01.03.521657; doi: https://doi.org/10.1101/2023.01.03.521657
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An Automated Scientist to Design and Optimize Microbial Strains for the Industrial Production of Small Molecules
Amoolya H. Singh, Benjamin B. Kaufmann-Malaga, Joshua A. Lerman, Daniel P. Dougherty, Yang Zhang, Alexander L. Kilbo, Erin H. Wilson, Chiam Yu Ng, Onur Erbilgin, Kate A. Curran, Christopher D. Reeves, John E. Hung, Simone Mantovani, Zachary A. King, Marites J. Ayson, Judith R. Denery, Chia-Wei Lu, Phillip Norton, Carol Tran, Darren M. Platt, Joel R. Cherry, Sunil S. Chandran, Adam L. Meadows
bioRxiv 2023.01.03.521657; doi: https://doi.org/10.1101/2023.01.03.521657

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